BACKGROUND OF THE INVENTION
[0001] Generally, when completing a subterranean well for the production of fluids, minerals,
or gases from underground reservoirs, several types of tubulars are placed downhole
as part of the drilling, exploration, and completions process. These tubulars can
include casing, tubing, pipes, liners, and devices conveyed downhole by tubulars of
various types. Each well is unique, so combinations of different tubulars may be lowered
into a well for a multitude of purposes.
[0002] A subsurface or subterranean well transits one or more formations. The formation
is a body of rock or strata that contains one or more compositions. The formation
is treated as a continuous body. Within the formation hydrocarbon deposits may exist.
Typically a wellbore will be drilled from a surface location, placing a hole into
a formation of interest. Completion equipment will be put into place, including casing,
tubing, and other downhole equipment as needed. Perforating the casing and the formation
with a perforating gun is a well known method in the art for accessing hydrocarbon
deposits within a formation from a wellbore.
[0003] Explosively perforating the formation using a shaped charge is a widely known method
for completing an oil well. A shaped charge is a term of art for a device that when
detonated generates a focused explosive output. This is achieved in part by the geometry
of the explosive in conjunction with an adjacent liner. Generally, a shaped charge
includes a metal case that contains an explosive material with a concave shape, which
has a thin metal liner on the inner surface. Many materials are used for the liner;
some of the more common metals include brass, copper, tungsten, and lead. When the
explosive detonates the liner metal is compressed into a superheated, super pressurized
jet that can penetrate metal, concrete, and rock. Perforating charges are typically
used in groups. These groups of perforating charges are typically held together in
an assembly called a perforating gun. Perforating guns come in many styles, such as
strip guns, capsule guns, port plug guns, and expendable hollow carrier guns.
[0004] Perforating charges are typically detonated by detonating cord in proximity to a
priming hole at the apex of each charge case. Typically, the detonating cord terminates
proximate to the ends of the perforating gun. In this arrangement, a detonator at
one end of the perforating gun can detonate all of the perforating charges in the
gun and continue a ballistic transfer to the opposite end of the gun. In this fashion,
numerous perforating guns can be connected end to end with a single detonator detonating
all of them.
[0005] The detonating cord is typically detonated by a detonator triggered by a firing head.
The firing head can be actuated in many ways, including but not limited to electronically,
hydraulically, and mechanically.
[0006] Expendable hollow carrier perforating guns are typically manufactured from standard
sizes of steel pipe with a box end having internal/female threads at each end. Pin
ended adapters, or subs, having male/external threads are threaded one or both ends
of the gun. These subs can connect perforating guns together, connect perforating
guns to other tools such as setting tools and collar locators, and connect firing
heads to perforating guns. Subs often house electronic, mechanical, or ballistic components
used to activate or otherwise control perforating guns and other components.
[0007] Perforating guns typically have a cylindrical gun body and a charge tube, or loading
tube that holds the perforating charges. The gun body typically is composed of metal
and is cylindrical in shape. Within a typical gun tube is a charge holder designed
to hold the shaped charges. Charge holders can be formed as tubes, strips, or chains.
The charge holder will contain cutouts called charge holes to house the shaped charges.
[0008] Many perforating guns are electrically activated. This requires electrical wiring
to at least the firing head for the perforating gun. In many cases, perforating guns
are run into the well in strings where guns are activated either singly or in groups,
often separate from the activation of other tools in the string, such as setting tools.
In these cases, electrical communication must be able to pass through one perforating
gun to other tools in the string. Typically, this involves threading at least one
wire through the interior of the perforating gun and using the gun body as a ground
wire.
[0009] WO 2015/179787 describes a box by pin perforating gun system using swaged down gun bodies, a removable
cartridge to hold a detonator and switch, and an insulated charge holder as an electrical
feed-through.
SUMMARY OF EXAMPLE EMBODIMENTS
[0010] The invention is an apparatus according to claim 1.
[0011] A variation of the example embodiment may include the housing having a thru bore
extending from the first end with a first inner diameter. It may include the housing
having a switch bore extending from the second end with a second inner diameter, wherein
the switch bore is adapted to house a switch. It may include the first outer diameter
having a plurality of o-ring grooves. It may include a snap ring disposed within the
outer circumferential groove of the housing and the inner circumferential groove of
the retainer. It may include an explosively activated switch disposed within the second
portion of the housing. It may include a first wire coupled to the switch and extending
through the first end of the housing. It may include a second wire coupled to the
switch and extending through the first end of the housing. The inner circumferential
groove and the outer circumferential groove may be sized to fit a snap ring. The first
outer diameter may be larger than the second outer diameter. The first bore of the
retainer may have a diameter substantially equal to the diameter of the second outer
diameter of the housing. The retainer may have a radial groove on the on the first
end that abuts the second end of the housing when the retainer is installed to the
housing. It may include a wave spring disposed within the radial groove, wherein the
wave spring provides a longitudinal force pushing the retainer away from the housing.
The switch is may be an addressable switch, a mechanical pressure switch, or a dual
diode switch.
[0012] An example embodiment may include an apparatus for electrically connecting a perforating
gun having a first perforating gun coupled to a tandem sub, a second perforating gun
coupled to the tandem sub, and the tandem sub containing an switch bulkhead assembly
further include a housing having a first portion having a first end and a first outer
diameter, and having a second portion with a second end and a second outer diameter,
an outer circumferential groove proximate to the second end, a thru bore extending
from the first end with a first inner diameter, and a switch bore extending from the
second end with a second inner diameter, a switch disposed within the switch bore
of the second portion of the housing, a retainer having a first end with a first bore
with a inner circumferential groove proximate to the first end, a second end with
a frusto conical shaped bore, a thru bore connecting the first bore with the frusto
conical shaped bore, wherein the first bore is coupled to the second end of the housing
and the inner circumferential groove of the retainer substantially align, and a snap
ring disposed within the outer circumferential groove of the housing and the inner
circumferential groove of the retainer.
[0013] A variation of an example embodiment may include the first outer diameter having
a plurality of o-ring grooves. It may include a first wire coupled to the switch and
extending through the first end of the housing. It may include a second wire coupled
to the switch and extending through the first end of the housing. The inner circumferential
groove and the outer circumferential groove may be sized to fit a snap ring. The first
outer diameter may be larger than the second outer diameter. The first bore of the
retainer may have a diameter substantially equal to the diameter of the second outer
diameter of the housing. The retainer may have a radial groove on the on the first
end that abuts the second end of the housing when the retainer is installed to the
housing. It may include a wave spring disposed within the radial groove, wherein the
wave spring provides a longitudinal force pushing the retainer away from the housing.
The switch may be an addressable switch, a mechanical pressure switch, or a dual diode
switch.
[0014] An example embodiment may include an electrically connecting a perforating gun comprising
a housing having a first portion having a first end and a first outer diameter, and
having a second portion with a second end and a second outer diameter, an outer circumferential
groove proximate to the second end, a thru bore extending from the first end with
a first inner diameter, and a switch bore extending from the second end with a second
inner diameter, a switch disposed within the switch bore of the second portion of
the housing, a retainer having a first end with a first bore with a inner circumferential
groove proximate to the first end, a second end with a frusto conical shaped bore,
a thru bore connecting the first bore with the frusto conical shaped bore, wherein
the first bore is coupled to the second end of the housing and the inner circumferential
groove of the retainer substantially align, and a snap ring disposed within the outer
circumferential groove of the housing and the inner circumferential groove of the
retainer.
[0015] An example of an example embodiment may include a method for electrically coupling
downhole tools comprising installing a switch into a housing, snapping a retainer
fitting to the end of the housing, wherein the switch is retained longitudinally and
is free to rotate, electrically coupling the wires from the switch to a tandem sub,
coupling the housing to the tandem sub by threading the retainer fitting into the
tandem sub, wherein the rotation of the retainer fitting does not cause the switch
to rotate, coupling a first perforating gun with a tandem sub, and coupling a second
perforating gun with the tandem sub to form a tool string.
[0016] A variation of the example embodiment may include lowering the tool string into a
wellbore. It may include pulling up on the tool string while it is in the wellbore.
It may include detonating the first perforating gun. It may include detonating the
second perforating gun. The switch may be an addressable switch, a mechanical pressure
switch, or a dual diode switch.
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] For a thorough understanding of the present invention, reference is made to the following
detailed description of the preferred embodiments, taken in conjunction with the accompanying
drawings in which reference numbers designate like or similar elements throughout
the several figures of the drawing. Briefly:
FIG. 1 shows a cross section of an example embodiment of a switch bulkhead.
FIG. 2 shows an assembly view of the components within an example embodiment of a
switch bulkhead.
FIG. 3 shows a side cross sectional view of an example embodiment of a downhole perforating
gun assembly containing a switch bulkhead.
FIG. 4 shows a cross section of an example embodiment of a switch bulkhead.
FIG. 5 shows a cross section of an example embodiment of a switch bulkhead.
DETAILED DESCRIPTION OF EXAMPLES OF THE INVENTION
[0018] In the following description, certain terms have been used for brevity, clarity,
and examples. No unnecessary limitations are to be implied therefrom and such terms
are used for descriptive purposes only and are intended to be broadly construed. The
different apparatus, systems and method steps described herein may be used alone or
in combination with other apparatus, systems and method steps. It is to be expected
that various equivalents, alternatives, and modifications are possible within the
scope of the appended claims.
[0019] The switch bulkhead assembly combines three existing products, a switch, a feed through
bulkhead, and a retainer nut into a single part. This increases the efficiency of
assembly of select fire perforating gun systems. A switch is used to fire individual
perforating guns in the downhole well environment. Each tandem sub, located between
perforating guns, may contain a switch, a detonator, and a bulkhead. The bulkhead
is required to maintain a pressure seal between the perforating guns after each gun
is fired from the downhole to uphole direction, or bottom up, exposing the fired gun
to well pressure. The tandem sub is assembled with the switch, bulkhead and detonator
in separate deliberate steps on location or at another location such as a gun loading
shop. The switch bulkhead assembly integrates the switch, retainer nut, and the feed
through bulkhead into one part, allowing the assembler to install both components
in one step. The switch may be an addressable switch, a mechanical pressure switch,
or a dual diode switch.
[0020] The switch bulkhead assembly may have two or three wires coming off of the body.
The switch bulkhead assembly will be installed into the downhole end of the tandem
sub using the hex head retainer nut which screws into the sub body. One wire, sometimes
colored blue, from the switch bulkhead assembly is connected to the through wire or
"shooting wire" from the above perforating gun. This wire connection can be made through
the port of the tandem sub. When ready to arm, the detonator is connected to a second
wire, sometimes green, of negative polarity and a third wire, sometimes red, of a
positive polarity of the switch bulkhead assembly. These wire connections can be made
through the port of the tandem sub. The detonator is then ballistically armed to the
detonating cord.
[0021] The bulkhead switch assembly may be a combination retainer nut, bulkhead containing
an electrical feed though. It may be a combination retainer nut and bulkhead containing
a dual diode switch. It may be a combination retainer nut and bulkhead containing
a mechanical pressure switch. It may be a combination retainer nut and bulkhead containing
an addressable switch. It would be a bulkhead containing an addressable switch without
a retainer nut.
[0022] An addressable switch typically has an associated microprocessor that can communicate
with and/or be communicated with a surface control system. An addressable switch typically
has a digital address associated with that particular switch. The addressable switch
may be interrogated by the surface control system. When a gun string is assembled,
the control system may map the switches and their associated guns. This allows for
the control system to selectively arm and fire perforating guns when deployed downhole.
The switches may be link to each other in series and then linked to the surface control
system on a wireline system. The switches may use other means for identifying themselves
to the surface control system. The switches provide a safety barrier between the electrical
commands of the surface control system and the perforating guns. The addressable switches
allow for skipping a gun that fails to function properly. The addressable switches
prevent incorrect wiring or incorrect mapping of the guns at the surface because the
surface control system and the addressable switches can map themselves through a series
of interrogations and responses. Addressable switches allow for long gun strings to
safely and efficiently perforate a multitude of selected areas in a formation.
[0023] FIG. 1 depicts an example embodiment of a switch bulkhead assembly 100. The assembly
100 contains a cylindrical body 101 with a hollow thru bore 117 and a switch bore
118 adapted to house a switch 103. A retainer 102 having threads 116, inner frusto-conical
surface 121, and a hex head portion 112 is coupled to the body 101. Retainer 102 is
held in place via retainer ring 110 located within the retainer inner ring groove
114 and the circumferential body retainer ring groove 115. Wave spring 111, disposed
within the radial groove 113, provides a constant ground contact between the retainer
102 and the body 101. In this example embodiment both the retainer 102 and the body
101 are electrically conductive. The retainer ring 110 allows the retainer 102 to
spin freely independent of the body 101 and overcome o-ring friction from o-rings
106 during the installation of the switch bulkhead assembly 100 into a perforating
gun. The switch 103 may be an addressable switch, a mechanical pressure switch, or
a dual diode switch.
[0024] The retainer ring 110 is first placed into the body retainer ring groove 115. In
this example the retainer ring 110 may be a snap ring with a gap. The retainer ring
110 compresses into the body retainer ring groove 115 while installing the retainer
102 over the retainer ring 110. The retainer ring 110 then snaps into place once it
lines up with the retainer ring groove 114.
[0025] An insulating sleeve 109 is located within the thru bore 117 to electrically isolate
the connection between the switch 103, wire 104, and the body 101. Grounding receptacle
107 is coupled to both the body 101 and the ground wire 105. Insulating sleeve 108
holds the wire 104 and ground wire 105 in place.
[0026] In one example, during operation a signal wire may be attached to the groove 119
on the plunger 120. In another example, a force may be applied to the plunger 120,
usually due to explosive pressure or fluid pressure, causing the plunger to move into
the switch 103, causing the switch to signal via wires 104 and 105 that a perforating
gun has fired and then arm the next gun in a perforating gun string.
[0027] FIG. 2 depicts an example embodiment of an exploded view of the switch bulkhead assembly
100. Wire 105 is coupled to grounding receptacle 107. Wire 104 is coupled to the switch
103. Switch 103 is located within cylindrical body 101. Retainer 102 is coupled to
the body 101 and held in place with retainer ring 110 located within the retainer
ring groove 114. Wave spring 111 provides a constant ground contact between the retainer
102 and the body 101. The plunger 120 is integral to the switch 103 and has a circumferential
groove 119 to contact to a signal wire. Hex head portion 112 has faces for a tool
to screw the retainer 102 into a tandem sub using threads 116. Retainer 102 has an
inner frusto-conical surface 121. Cylindrical body 101, which acts as a housing containing
the switch 103, has o-rings to seal it within a tandem sub. Insulating sleeve 109
is used to electrically isolate the connection between the switch 103, wire 104, and
the body 101. Insulating sleeve 108 holds the wire 104 and ground wire 105 in place.
The switch 103 may be an addressable switch, a mechanical pressure switch, or a dual
diode switch.
[0028] FIG. 3 depicts an example embodiment of a perforating gun assembly 300. The perforating
gun assembly 300 includes a top sub 301 located at the uphole end of the perforating
gun assembly 300. A first perforating gun 302 is coupled to, and located downhole
from, the top sub 301. A first tandem sub 303 is coupled to, and located downhole
from, the perforating gun 302. A second perforating gun 310 is coupled to, and located
downhole from, the tandem sub 303. A second tandem sub 311 is coupled to, and located
downhole from, the perforating gun 310. The switch 103 may be an addressable switch,
a mechanical pressure switch, or a dual diode switch.
[0029] Perforating gun 302 contained a shaped charge 305 located in a charge tube 312. The
detonating cord 304 is coupled to the apex end of the shaped charge 305. A switch
309 is located in the tandem sub 303 and is coupled to the detonating cord 304. The
control fire switch 309 is electrically coupled to the feed thru bulkhead 307 located
within the tandem sub 303.
[0030] The switch bulkhead assembly 100 includes a retainer 102 that is coupled to the tandem
sub 303 using threads 116. The plunger 120 is coupled to a spring loaded pin 320 disposed
within the end fitting 308, which is held into place using retainer 306.
[0031] Perforating gun 310 includes a shaped charge 313 within a charge tube 315 and a detonating
cord 314 coupled to the apex end of the shaped charge 313. Detonating cord 314 is
coupled to the switch 316. The switch 316 is electrically connected to feed thru bulkhead
317 located within the tandem sub 311.
[0032] When the feed thru bulkhead is installed into tandem sub 303, the wires 104 and 105
are wired to the switch 309, then the feed thru bulkhead 307 is threaded into place
using retainer 102 and threads 116. Since the retainer 102 can spin freely with respect
to the body 101 due to retainer ring 110, the feed thru bulkhead 307 can be tightened
down without inadvertently twisting wires 104 and 105. The body 101 will be held relatively
at the same orientation during installation of the retainer 102 because of the o-ring
106 friction. Insulating sleeve 108 holds the wire 104 and ground wire 105 in place.
Wave spring 111 provides a constant ground contact between the retainer 102 and the
body 101.
[0033] During operation the detonation by switch 316 of detonating cord 314 will cause the
shaped charge 313 to fire. The pressure generated in perforating gun 310 will also
impact spring loaded pin 320 to push against plunger 120, closing the switch located
within feed thru bulkhead 307. Closing feed thru bulkhead 307 will arm switch 309.
[0034] FIG. 4 depicts an example embodiment of a switch bulkhead assembly 400. The assembly
400 contains a cylindrical body 401 with a switch bore 418 adapted to house a switch
403. A retainer 402 having threads 416, inner frusto-conical surface 421, and a hex
head portion 412 is coupled to the body 401. Retainer 402 is held in place via retainer
ring 410 located within the retainer inner ring groove 414 and the circumferential
body retainer ring groove 415. Wave spring 411, disposed within the radial groove
413, provides a constant ground contact between the retainer 402 and the body 401.
In this example embodiment both the retainer 402 and the body 401 are electrically
conductive. The retainer ring 410 allows the retainer 402 to spin freely independent
of the body 401 and overcome o-ring friction from o-rings 406 during the installation
of the switch bulkhead assembly 400 into a perforating gun. The switch 403 may be
an addressable switch, a mechanical pressure switch, or a dual diode switch. A circuit
board 450 is electrically connected to the switch 403. The circuit board 450 may include
a microprocessor. The circuit board 450 has wires 451 extending from the distal end
of the circuit board 450. The wires 450 may be three wires. The wires 450 may include
a negative polarity wire, a positive polarity wire, and a ground wire. The circuit
board 450 may be integral with switch 403 and may collectively be referred to as the
switch.
[0035] The retainer ring 410 is first placed into the body retainer ring groove 415. In
this example the retainer ring 410 may be a snap ring with a gap. The retainer ring
410 compresses into the body retainer ring groove 415 while installing the retainer
402 over the retainer ring 410. The retainer ring 410 then snaps into place once it
lines up with the retainer ring groove 414.
[0036] In one example, during operation a signal wire may be attached to the groove 419
on the plunger 420. In another example, a force may be applied to the plunger 420,
usually due to explosive pressure or fluid pressure, causing the plunger to move into
the switch 403, signaling that a perforating gun has fired and arming the next gun
in a perforating gun string.
[0037] FIG. 5 depicts an example embodiment of a switch bulkhead assembly 500. The assembly
500 contains a cylindrical body 501 with a switch bore 518 adapted to house a switch
503. A retainer 502 having threads 516, inner frusto-conical surface 521, and a hex
head portion 512 is coupled to the body 501. Retainer 502 is held in place via retainer
ring 510 located within the retainer inner ring groove 514 and the circumferential
body retainer ring groove 515. Wave spring 511, disposed within the radial groove
513, provides a constant ground contact between the retainer 502 and the body 501.
In this example embodiment both the retainer 502 and the body 501 are electrically
conductive. The retainer ring 510 allows the retainer 502 to spin freely independent
of the body 501 and overcome o-ring friction from o-rings 506 during the installation
of the switch bulkhead assembly 500 into a perforating gun. A circuit board 550 is
electrically connected to the switch 503. The circuit board 550 may be integral with
switch 503 and may collectively be referred to as the switch. The circuit board 550
may include a microprocessor. The circuit board 550 has wires 551 extending from the
distal end of the circuit board 550. The wires 550 may be three wires. The wires 550
may include a negative polarity wire, a positive polarity wire, and a ground wire.
Body 501 is coupled to, or integral with, switch shield 452 that protects circuit
board 550. The switch 503 may be an addressable switch, a mechanical pressure switch,
or a dual diode switch.
[0038] The retainer ring 510 is first placed into the body retainer ring groove 515. In
this example the retainer ring 510 may be a snap ring with a gap. The retainer ring
510 compresses into the body retainer ring groove 515 while installing the retainer
502 over the retainer ring 510. The retainer ring 510 then snaps into place once it
lines up with the retainer ring groove 514.
[0039] In one example, during operation a signal wire may be attached to the groove 519
on the plunger 520. In another example, a force may be applied to the plunger 520,
usually due to explosive pressure or fluid pressure, causing the plunger to move into
the switch 503, signaling that a perforating gun has fired and arming the next gun
in a perforating gun string.
[0040] Although the invention has been described in terms of embodiments which are set forth
in detail, it should be understood that this is by illustration only and that the
invention is not necessarily limited thereto. For example, terms such as upper and
lower or top and bottom can be substituted with uphole and downhole, respectfully.
Top and bottom could be left and right, respectively. Uphole and downhole could be
shown in figures as left and right, respectively, or top and bottom, respectively.
Generally downhole tools initially enter the borehole in a vertical orientation, but
since some boreholes end up horizontal, the orientation of the tool may change. In
that case downhole, lower, or bottom is generally a component in the tool string that
enters the borehole before a component referred to as uphole, upper, or top, relatively
speaking. The first housing and second housing may be top housing and bottom housing,
respectfully. Terms like wellbore, borehole, well, bore, oil well, and other alternatives
may be used synonymously. Terms like tool string, tool, perforating gun string, gun
string, or downhole tools, and other alternatives may be used synonymously.
1. An apparatus (100) for electrically connecting a perforating gun comprising:
a housing (101) having a first portion having a first end and a first outer diameter,
and having a second portion with a second end and a second outer diameter, and an
outer circumferential groove (115) proximate to the second end;
a switch (103) disposed within the housing (101);
a retainer (102) having a first end with a first bore with an inner circumferential
groove (114) proximate to the first end, a second end with a frusto conical shaped
bore (121), a thru bore connecting the first bore with the frusto conical shaped bore
(121), wherein the first bore is coupled to the second end of the housing (101) and
the inner circumferential groove (114) of the retainer (102) substantially align;
and
a snap ring (110) disposed within the outer circumferential groove of the housing
(101) and the inner circumferential groove (114) of the retainer (102).
2. The apparatus of claim 1 further comprising the housing (101) having a thru bore (117)
extending from the first end with a first inner diameter.
3. The apparatus of claim 1 further comprising the housing (101) having a switch bore
(418) extending from the second end with a second inner diameter, wherein the switch
bore is adapted to house the switch (103).
4. The apparatus of claim 1 further comprising the first outer diameter having a plurality
of o-ring grooves (106).
5. The apparatus of claim 1 wherein the switch (103) is an explosively activated switch
disposed within the second portion of the housing (101).
6. The apparatus of claim 1 further comprising a first wire (104) coupled to the switch
(103) and extending through the first end of the housing (101).
7. The apparatus of claim 1 further comprising a second wire (105) coupled to the switch
(103) and extending through the first end of the housing (101).
8. The apparatus of claim 1, wherein the inner circumferential groove (114) of the retainer
(102) and the outer circumferential groove (115) of the housing (101) are sized to
fit a snap ring (110).
9. The apparatus of claim 1 wherein the first outer diameter is larger than the second
outer diameter.
10. The apparatus of claim 1, wherein the first bore of the retainer has a diameter substantially
equal to the diameter of the second outer diameter of the housing (101).
11. The apparatus of claim 1 further comprising the retainer (102) having a radial groove
(113) on the first end that abuts the second end of the housing (101) when the retainer
(102) is installed to the housing (101).
12. The apparatus of claim 11 further comprising a wave spring (111) disposed within the
radial groove, wherein the wave spring provides a longitudinal force pushing the retainer
away from the housing (101).
13. The apparatus of claim 1 wherein the switch is an addressable switch, a mechanical
pressure switch, or a dual diode switch.
1. Eine Vorrichtung (100) zum elektrischen Anschließen einer Perforierpistole, aufweisend:
ein Gehäuse (101) aufweisend einen ersten Abschnitt, der ein erstes Ende und einen
ersten Außendurchmesser aufweist, und einen zweiten Abschnitt, der ein zweites Ende
und einen zweiten Außendurchmesser aufweist, und eine äußere umlaufende Nut (115)
in der Nähe des zweiten Endes;
einen Schalter (103) angeordnet innerhalb des Gehäuses (101);
einen Halter (102) aufweisend ein erstes Ende, das eine erste Bohrung aufweist, die
eine innere umlaufende Nut (114) in der Nähe des ersten Endes aufweist, ein zweites
Ende, das eine kegelstumpfförmigen Bohrung (121) aufweist, eine Durchbohrung, die
die erste Bohrung mit der kegelstumpfförmigen Bohrung (121) verbindet, wobei die erste
Bohrung mit dem zweiten Ende des Gehäuses (101) gekuppelt ist und die innere umlaufende
Nut (114) des Halters (102) im Wesentlichen ausrichtet; und
einen Sicherungsring (110), der innerhalb der äußeren umlaufenden Nut des Gehäuses
(101) und der inneren umlaufenden Nut (114) des Halters (102) angeordnet ist.
2. Die Vorrichtung gemäß Anspruch 1 ferner aufweisend,
dass das Gehäuse (101) eine Durchbohrung (117), die sich von dem ersten Ende erstreckt,
mit einem ersten Innendurchmesser aufweist.
3. Die Vorrichtung gemäß Anspruch 1 ferner aufweisend,
dass das Gehäuse (101) eine Schalterbohrung (418), die sich von dem zweiten Ende erstreckt,
mit einem zweiten Innendurchmesser aufweist, wobei die Schalterbohrung geeignet ist,
den Schalter (103) aufzunehmen.
4. Die Vorrichtung gemäß Anspruch 1 ferner aufweisend,
dass der erste Außendurchmesser eine Mehrzahl von O-RingNuten (106) aufweist.
5. Die Vorrichtung gemäß Anspruch 1,
wobei der Schalter (103) ein explosionsaktivierter Schalter ist, der innerhalb des
zweiten Abschnitts des Gehäuses (101) angeordnet ist.
6. Die Vorrichtung gemäß Anspruch 1 ferner aufweisend,
einen ersten Draht (104), der an den Schalter (103) gekoppelt ist und der sich durch
das erste Ende des Gehäuses (101) erstreckt.
7. Die Vorrichtung gemäß Anspruch 1 ferner aufweisend,
einen zweiten Draht (105), der an den Schalter (103) gekoppelt ist und der sich durch
das erste Ende des Gehäuses (101) erstreckt.
8. Die Vorrichtung gemäß Anspruch 1,
wobei die innere umlaufende Nut (114) des Halters (102) und die äußere umlaufende
Nut (115) des Gehäuses (101) zum Anbringen eines Sicherungsrings (110) dimensioniert
sind.
9. Die Vorrichtung gemäß Anspruch 1,
wobei der erste Außendurchmesser größer ist als der zweite Außendurchmesser.
10. Die Vorrichtung gemäß Anspruch 1,
wobei die erste Bohrung des Halters einen Durchmesser aufweist, der im Wesentlichen
dem Durchmesser des zweiten Außendurchmessers des Gehäuses (101) gleicht.
11. Die Vorrichtung gemäß Anspruch 1 ferner aufweisend,
dass der Halter (102) am ersten Ende eine Radialnut (113) aufweist, die am zweiten
Ende des Gehäuses (101) anliegt, wenn der Halter (102) am Gehäuse (101) installiert
ist.
12. Die Vorrichtung gemäß Anspruch 11 ferner aufweisend,
eine Wellenfeder (111) angeordnet innerhalb der Radialnut,
wobei die Wellenfeder eine Längskraft bereitstellt, die den Halter vom Gehäuse (101)
wegdrückt.
13. Die Vorrichtung gemäß Anspruch 1,
wobei der Schalter ein adressierbarer Schalter, ein mechanischer Druckschalter oder
ein Doppeldiodenschalter ist.
1. Appareil (100) pour connecter électriquement un canon de perforation, comprenant :
un boîtier (101) ayant une première partie ayant une première extrémité et un premier
diamètre extérieur, et ayant une seconde partie avec une seconde extrémité et un second
diamètre extérieur, et une rainure circonférentielle extérieure (115) à proximité
de la seconde extrémité ;
un commutateur (103) disposé à l'intérieur du boîtier (101) ;
un dispositif de retenue (102) ayant une première extrémité avec un premier alésage
avec une rainure circonférentielle intérieure (114) à proximité de la première extrémité,
une seconde extrémité avec un alésage de forme tronconique (121), un alésage traversant
connectant le premier alésage à l'alésage de forme tronconique (121), dans lequel
le premier alésage est couplé à la seconde extrémité du boîtier (101) et la rainure
circonférentielle intérieure (114) du dispositif de retenue (102) sont sensiblement
alignés ; et
une bague de sécurité (110) disposée dans la rainure circonférentielle extérieure
du boîtier (101) et la rainure circonférentielle intérieure (114) du dispositif de
retenue (102) .
2. Appareil selon la revendication 1, comprenant en outre le boîtier (101) ayant un alésage
traversant (117) s'étendant depuis la première extrémité avec un premier diamètre
intérieur.
3. Appareil selon la revendication 1, comprenant en outre le boîtier (101) ayant un alésage
de commutateur (418) s'étendant à partir de la seconde extrémité avec un second diamètre
intérieur, dans lequel l'alésage de commutateur est adapté pour loger le commutateur
(103).
4. Appareil selon la revendication 1, comprenant en outre le premier diamètre extérieur
ayant une pluralité de rainures de joint torique (106).
5. Appareil selon la revendication 1, dans lequel le commutateur (103) est un commutateur
activé par explosion disposé à l'intérieur de la seconde partie du boîtier (101).
6. Appareil selon la revendication 1, comprenant en outre un premier fil (104) couplé
au commutateur (103) et s'étendant à travers la première extrémité du boîtier (101).
7. Appareil selon la revendication 1, comprenant en outre un second fil (105) couplé
au commutateur (103) et s'étendant à travers la première extrémité du boîtier (101).
8. Appareil selon la revendication 1, dans lequel la rainure circonférentielle intérieure
(114) du dispositif de retenue (102) et la rainure circonférentielle extérieure (115)
du boîtier (101) sont dimensionnées pour s'adapter à une bague de sécurité (110).
9. Appareil selon la revendication 1, dans lequel le premier diamètre extérieur est supérieur
au second diamètre extérieur.
10. Appareil selon la revendication 1, dans lequel le premier alésage du dispositif de
retenue a un diamètre sensiblement égal au diamètre du second diamètre extérieur du
boîtier (101).
11. Appareil selon la revendication 1, comprenant en outre le dispositif de retenue (102)
ayant une rainure radiale (113) sur la première extrémité qui vient en butée contre
la seconde extrémité du boîtier (101) lorsque le dispositif de retenue (102) est installé
sur le boîtier (101).
12. Appareil selon la revendication 11, comprenant en outre un ressort ondulé (111) disposé
à l'intérieur de la rainure radiale, dans lequel le ressort ondulé fournit une force
longitudinale poussant le dispositif de retenue à l'écart du boîtier (101).
13. Appareil selon la revendication 1, dans lequel le commutateur est un commutateur adressable,
un commutateur à pression mécanique ou un commutateur à double diode.